Vink Matthias J A, Schermer John J, Martens Jonathan, Buma Wybren Jan, Berden Giel, Oomens Jos
Institute for Molecules and Materials, FELIX Laboratory, Radboud University, Toernooiveld 7, 6525 ED Nijmegen, The Netherlands.
Institute for Molecules and Materials, Radboud University, Heyendaalseweg 135, 6525 AJ Nijmegen, The Netherlands.
ACS Agric Sci Technol. 2023 Jan 19;3(2):171-180. doi: 10.1021/acsagscitech.2c00279. eCollection 2023 Feb 20.
Agricultural activities at lower temperatures lead to lower yields due to reduced plant growth. Applying photomolecular heater agrochemicals could boost yields under these conditions, but UV-induced degradation of these compounds needs to be assessed. In this study, we employ liquid chromatography-mass spectrometry (LC-MS) coupled with infrared ion spectroscopy (IRIS) to detect and identify the degradation products generated upon simulated solar irradiation of sinapoyl malate, a proposed photomolecular heater/UV filter compound. All major irradiation-induced degradation products are identified in terms of their full molecular structure by comparing the IRIS spectra obtained after LC fractionation and mass isolation with reference IR spectra obtained from quantum-chemical calculations. In cases where physical standards are available, a direct experimental-to-experimental comparison is possible for definitive structure identification. We find that the major degradation products originate from -to- isomerization, ester cleavage, and esterification reactions of sinapoyl malate. Preliminary in silico toxicity investigations using the VEGAHUB platform suggest no significant concerns for these degradation products' human and environmental safety. The identification workflow presented here can analogously be applied to break down products from other agrochemical compounds. As the method records IR spectra with the sensitivity of LC-MS, application to agricultural samples, e.g., from field trials, is foreseen.
低温下的农业活动会因植物生长减缓而导致产量降低。施用光分子加热器农用化学品在这些条件下可以提高产量,但这些化合物的紫外线诱导降解需要进行评估。在本研究中,我们采用液相色谱 - 质谱联用(LC-MS)结合红外离子光谱(IRIS)来检测和鉴定在模拟太阳辐射下苹果酸芥子酰酯(一种拟用光分子加热器/紫外线过滤化合物)产生的降解产物。通过将液相色谱分离和质量分离后获得的IRIS光谱与从量子化学计算获得的参考IR光谱进行比较,所有主要的辐射诱导降解产物都根据其完整分子结构进行了鉴定。在有物理标准品的情况下,可以进行直接的实验与实验比较以确定结构。我们发现主要降解产物源自苹果酸芥子酰酯的顺反异构化、酯裂解和酯化反应。使用VEGAHUB平台进行的初步计算机模拟毒性研究表明,这些降解产物对人类和环境安全没有重大问题。这里介绍的鉴定工作流程可以类似地应用于其他农用化学品化合物的分解产物。由于该方法以LC-MS的灵敏度记录IR光谱,预计可应用于农业样品,例如来自田间试验的样品。